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Conejero-Lara, F.

Publications and source records attributed to Conejero-Lara, F..

2 recordsLinked to original sources

Nanobodies as therapies for loss-of-function misfolding diseases.

Misfolding diseases that result in loss of function represent a considerable burden for both individuals and society. Primary hyperoxaluria type 1 (PH1) is a rare genetic disorder caused by mutations in the alanine:glyoxylate aminotransferase 1 (AGT) enzyme. The underlying molecular mechanisms causing PH1 are associated with protein misfolding (enhanced aggregation and mitochondrial mistargeting). The main therapeutic approach to increase patients lifespan and quality of life is a double kidney and liver transplantation. Alternative treatments such as gene and enzyme replacement and pharmacological chaperones are currently being introduced, but other alternatives are necessary. In this work, we developed and characterized a novel biotechnological approach using six single-domain nanobodies (NB-AGT-1 to -6) as potential therapeutics for PH1 misfolding. We show that NB-AGTs are very stable proteins and bind to pathogenic and non-pathogenic variants of AGT with extreme affinities (with Kd values from low nM to low pM). Structural studies showed that NB-AGTs bind to different epitopes of AGT with selectivity for different AGT variants. Experiments in cellular PH1 models showed that internalization of engineered NB-AGT-3 enhanced the specific activity of disease-associated variants. Overall, we show that NBs are a novel and promising approach to treat PH1 and other loss-of-function misfolding diseases.

biophysics↗

The WIPI homolog Atg18 binds to and tethers membranes containing phosphatidylinositol-3,4,5-triphosphate.

Atg18 --for Autophagy-related gene 18-- is a member of the PROPPIN ({beta}-propellers that bind polyphosphoinositides) family, which is known for its binding to phosphorylated phosphoinositides through two conserved binding sites. Although Atg18 binding to polyphosphoinositides is crucial for its roles in both autophagic and non-autophagic functions within cells, the precise molecular mechanism by which Atg18 selectively binds to specific phosphatidylinositols remains unresolved. Here, we combined molecular dynamic simulations and biophysical methods --including isothermal titration calorimetry (ITC), cosedimentation, fluorescence resonance energy transfer (FRET), and dynamic light scattering (DLS)-- to characterize the interaction between Atg18 and polyphosphoinositides. In contrast to previous findings, we demonstrate that Atg18 binds to and clusters liposomes containing phosphatidylinositol-3,4,5-triphosphate (PtdIns(3,4,5)P3), suggesting that Atg18 oligomerizes and tethers opposing membranes containing this physiological phosphatidylinositol. Hence, our results provide new insights into how Atg18 and its mammalian homologs, WIPI --for WD-repeat domain phosphoinositide-interacting-- proteins, may regulate organelle membrane organization and vesicle trafficking required for both autophagic and non-autophagic functions.

biophysics↗